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Characterization and manipulation of single nanoparticles using a nanopore-based electrokinetic tweezer

机译:单的描述和操作纳米粒子使用纳米孔动电的钳子

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摘要

Manipulation and characterization of nanoscale objects through electrokinetic techniques offer numerous advantages compared to the existing optical methods and hold great potential for both fundamental research and practical applications. Here we present a novel electrokinetic tweezer for single nanoparticle manipulation and characterization based on electrokinetic trapping near a low-aspect-ratio nanopore. We find that this nanopore-based electrokinetic tweezer share lots of similarity with optical tweezers and can be modeled as an overdamped harmonic oscillator, with the spring constant of the system being the trap stiffness. We show that different values of ionic currents through the nanopore and trap stiffnesses are achieved when trapping nanoparticles with different sizes (down to 100 nm) and/or zeta potentials. We also demonstrate that the trap stiffness and nanoparticle position can be easily tuned by changing the applied voltage and buffer concentration. We envision that further development of this electrokinetic tweezer will enable various advanced tools for nanophotonics, drug delivery, and biosensing.
机译:操纵和纳米尺度的特征对象通过动电的技术报价相比现有的众多优势光学方法和蕴含着巨大的潜力基础研究和实际应用。在这里,我们提出一个新颖的动电的镊子针对单一纳米操纵和描述基于动电的捕获附近low-aspect-ratio纳米孔。这种纳米孔动电的镊子很多相似的光镊和可以被建模为一个过阻尼谐振子,弹簧常数的系统陷阱刚度。离子电流通过纳米孔和陷阱当捕获实现刚度纳米粒子与不同大小(降至100海里)和/或ζ电位。陷阱刚度和纳米粒子的位置可以很容易地调整通过改变应用电压和缓冲的浓度。这个动电的进一步发展镊子将使各种先进的工具纳米光子学,药物输送,若。

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